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GLOBALSOFT TECHNOLOGIES 
IEEE PROJECTS & SOFTWARE DEVELOPMENTS 
IEEE FINAL YEAR PROJECTS|IEEE ENGINEERING PROJECTS|IEEE STUDENTS PROJECTS|IEEE 
BULK PROJECTS|BE/BTECH/ME/MTECH/MS/MCA PROJECTS|CSE/IT/ECE/EEE PROJECTS 
CELL: +91 98495 39085, +91 99662 35788, +91 98495 57908, +91 97014 40401 
Visit: www.finalyearprojects.org Mail to:ieeefinalsemprojects@gmail.com 
Blind Prediction of Natural Video Quality
Abstract 
We propose a blind (no reference or NR) video quality evaluation model that is nondistortion 
specific. The approach relies on a spatio-temporal model of video scenes in the discrete cosine 
transform domain, and on a model that characterizes the type of motion occurring in the scenes, 
to predict video quality. We use the models to define video statistics and perceptual features that 
are the basis of a video quality assessment (VQA) algorithm that does not require the presence of 
a pristine video to compare against in order to predict a perceptual quality score. The 
contributions of this paper are threefold. 1)We propose a spatio-temporal natural scene statistics 
(NSS) model for videos. 2) We propose a motion model that quantifies motion coherency in 
video scenes. 3) We show that the proposed NSS and motion coherency models are appropriate 
for quality assessment of videos, and we utilize them to design a blind VQA algorithm that 
correlates highly with human judgments of quality. The proposed algorithm, called video 
BLIINDS, is tested on the LIVE VQA database and on the EPFL-PoliMi video database and 
shown to perform close to the level of top performing reduced and full reference VQA 
algorithms.
Existing method: 
There are no existing blind VQA approaches that are non-distortion specific, which makes it 
difficult to compare our algorithm against other methods. Full-reference and reduced reference 
approaches have the enormous advantage of access to the reference video or information about 
it. Blind algorithms generally require that the algorithm be trained on a portion of the database. 
We do however, compare against the naturalness index NIQE in, which is a blind IQA approach 
applied on a frame-by-frame basis to the video, and also against top performing full-reference 
and reduced reference algorithms. 
Proposed method: 
was proposed that extracts transform coefficients from encoded bitstreams. A PSNR value is 
estimated between the quantized transform coefficients and the predicted non-quantized 
coefficients prior to encoding. The estimated PSNR is weighted using the perceptual models 
.The algorithm, however, requires knowledge of the quantization step used by the encoder for 
each macroblock in the video, and is hence not applicable when this information is not available. 
The authors of [32] propose a distortion-specific approach based on a saliency map of detected 
faces. However, this approach is both semantic dependent and distortion dependent. 
Merits: 
1. Output frame will be good quality
Flow chart: 
Results:
IEEE 2014 MATLAB IMAGE PROCESSING PROJECTS Blind prediction of natural video quality

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IEEE 2014 MATLAB IMAGE PROCESSING PROJECTS Blind prediction of natural video quality

  • 1. GLOBALSOFT TECHNOLOGIES IEEE PROJECTS & SOFTWARE DEVELOPMENTS IEEE FINAL YEAR PROJECTS|IEEE ENGINEERING PROJECTS|IEEE STUDENTS PROJECTS|IEEE BULK PROJECTS|BE/BTECH/ME/MTECH/MS/MCA PROJECTS|CSE/IT/ECE/EEE PROJECTS CELL: +91 98495 39085, +91 99662 35788, +91 98495 57908, +91 97014 40401 Visit: www.finalyearprojects.org Mail to:ieeefinalsemprojects@gmail.com Blind Prediction of Natural Video Quality
  • 2. Abstract We propose a blind (no reference or NR) video quality evaluation model that is nondistortion specific. The approach relies on a spatio-temporal model of video scenes in the discrete cosine transform domain, and on a model that characterizes the type of motion occurring in the scenes, to predict video quality. We use the models to define video statistics and perceptual features that are the basis of a video quality assessment (VQA) algorithm that does not require the presence of a pristine video to compare against in order to predict a perceptual quality score. The contributions of this paper are threefold. 1)We propose a spatio-temporal natural scene statistics (NSS) model for videos. 2) We propose a motion model that quantifies motion coherency in video scenes. 3) We show that the proposed NSS and motion coherency models are appropriate for quality assessment of videos, and we utilize them to design a blind VQA algorithm that correlates highly with human judgments of quality. The proposed algorithm, called video BLIINDS, is tested on the LIVE VQA database and on the EPFL-PoliMi video database and shown to perform close to the level of top performing reduced and full reference VQA algorithms.
  • 3. Existing method: There are no existing blind VQA approaches that are non-distortion specific, which makes it difficult to compare our algorithm against other methods. Full-reference and reduced reference approaches have the enormous advantage of access to the reference video or information about it. Blind algorithms generally require that the algorithm be trained on a portion of the database. We do however, compare against the naturalness index NIQE in, which is a blind IQA approach applied on a frame-by-frame basis to the video, and also against top performing full-reference and reduced reference algorithms. Proposed method: was proposed that extracts transform coefficients from encoded bitstreams. A PSNR value is estimated between the quantized transform coefficients and the predicted non-quantized coefficients prior to encoding. The estimated PSNR is weighted using the perceptual models .The algorithm, however, requires knowledge of the quantization step used by the encoder for each macroblock in the video, and is hence not applicable when this information is not available. The authors of [32] propose a distortion-specific approach based on a saliency map of detected faces. However, this approach is both semantic dependent and distortion dependent. Merits: 1. Output frame will be good quality